Electrical, Systems, and Control Engineering Program, Graduate School of Advanced Science and Engineering, Hiroshima University, Higashi-Hiroshima, Hiroshima, 739-8527, Japan.
New Business Producing Division, Maxell Ltd., Yokohama, 240-0005, Japan.
Sci Rep. 2023 Nov 28;13(1):20999. doi: 10.1038/s41598-023-48292-1.
Dynamic visual acuity (DVA) is crucial for the perception of moving objects. While traditional DVA assessment tools predominantly focus on horizontal movements, the evaluation of vertical DVA remains unstandardized. Consequently, the disparities between vertical and horizontal DVAs are yet to be thoroughly investigated. Therefore, we designed a system capable of conducting multidirectional DVA tests and eye movement measurements. During the experiments, the participants identified the gap direction of the Landolt-C ring moving either horizontally or vertically. The speed of movement decelerated from its maximum as a high-speed infrared camera captured the pupil movements of the left eye at 500 fps. We conducted tests on 15 healthy university students (aged [Formula: see text] years) and measured vertical and horizontal DVAs five times each. DVA was deduced from the Landolt-C ring speed with accurate gap direction responses, and eye movement was assessed based on the total gaze movement distance. The results revealed superior DVA and eye movement in the horizontal direction compared with the vertical direction ([Formula: see text]). This highlights the anisotropic characteristics of DVA and eye movement. The proposed system has the potential for multidirectional dynamic vision evaluation and training in clinical scenarios.
动态视力(DVA)对于感知移动物体至关重要。虽然传统的 DVA 评估工具主要侧重于水平运动,但垂直 DVA 的评估仍然没有标准化。因此,垂直和水平 DVA 之间的差异尚未得到彻底研究。因此,我们设计了一个能够进行多方向 DVA 测试和眼球运动测量的系统。在实验中,参与者识别以水平或垂直方向移动的 Landolt-C 环的缺口方向。运动速度从高速(高速红外摄像机以 500 fps 的速度拍摄左眼的瞳孔运动)逐渐减慢。我们对 15 名健康的大学生(年龄[Formula: see text]岁)进行了测试,并对垂直和水平 DVA 进行了五次测量。DVA 是根据准确的缺口方向响应从 Landolt-C 环速度推断出来的,眼球运动是根据总注视运动距离来评估的。结果表明,水平方向的 DVA 和眼球运动优于垂直方向([Formula: see text])。这突出了 DVA 和眼球运动的各向异性特征。该系统有可能在临床环境中进行多方向动态视觉评估和训练。